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Recent developments in metamodel based robust black-box simulation optimization: An overview

机译:基于元模型的稳健黑盒仿真优化的最新进展:概述

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摘要

In the real world of engineering problems, in order to reduce optimization costs in physical processes, running simulation experiments in the format of computer codes have been conducted. It is desired to improve the validity of simulation-optimization results by attending the source of variability in the model’s output(s). Uncertainty can increase complexity and computational costs in Designing and Analyzing of Computer Experiments (DACE). In this state of the art review paper, a systematic qualitative and quantitative review is implemented among Metamodel Based Robust Simulation Optimization (MBRSO) for black-box and expensive simulation models under uncertainty. This context is focused on the management of uncertainty, particularly based on the Taguchi worldview on robust design and robust optimization methods in the class of dual response methodology when simulation optimization can be handled by surrogates. At the end, while both trends and gaps in the research field are highlighted, some suggestions for future research are directed.
机译:在实际的工程问题中,为了减少物理过程中的优化成本,已经以计算机代码的形式进行了模拟实验。希望通过关注模型输出的可变性来源来提高仿真优化结果的有效性。不确定性会增加计算机实验的设计和分析(DACE)的复杂性和计算成本。在这篇最新的综述文章中,针对不确定性下的黑盒和昂贵的仿真模型,在基于元模型的鲁棒仿真优化(MBRSO)中实施了系统的定性和定量评论。这种情况的重点是不确定性的管理,特别是基于田口(Taguchi)关于稳健设计和稳健优化方法的世界观(在双重响应方法中,当代理可以处理仿真优化时)。最后,在强调研究领域的趋势和差距的同时,针对未来的研究提出了一些建议。

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